Replaces Prod. #: ALX-215-026
Product Specification
| Alternative Name: | KCIP-1, Protein kinase C inhibitor protein 1, 14-3-3β/ζ, Protein 1054 |
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| Purity Detail: | Affinity purified phospho-specific antibody. |
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| Immunogen: | 14-3-3 phosphorylated at Ser185. |
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| Source/Host: | From sheep. |
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| Specificity: | Recognizes human, mouse, rat, cow and sheep 14-3-3β and 14-3-3ζ phosphorylated at Ser185. |
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| Application: | Western Blot (1:300-500) Optimal condition must be determined individually for each application. |
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| Long Term Storage: | -20°C |
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| Background / Technical Information: | Please click here for the comprehensive product datasheet. |
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Western blot analysis performed with BML-SA479 antibody (1:500), secondary anti-sheep antibody (1:2’000), blotted against 2μg each of: 1. Recombinant 14-3-3β expressed in E.coli 2. Recombinant 14-3-3ζ expressed in E.coli 3. Sheep brain homogenate, which contains ~50% of β and ζ isoforms that are phosphorylated on Ser185.
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General Literature References
Novel brain 14-3-3 interacting proteins involved in neurodegenerative disease.: S. Mackie & A. Aitken; FEBS J.
272, 4202 (2005),
Abstract;
Unchanged survival rates of 14-3-3gamma knockout mice after inoculation with pathological prion protein.: P. Steinacker et al.; Mol. Cell Biol.
25, 1339 (2005),
Abstract;
Interaction of Akt-phosphorylated ataxin-1 with 14-3-3 mediates neurodegeneration in spinocerebellar ataxia type 1.: H-K. Chen et al.; Cell
113, 457 (2003),
Abstract;
Mammalian and yeast 14-3-3 isoforms form distinct patterns of dimers in vivo.: M. Chaudhri et al.; Biochem. Biophys. Res. Commun.
300, 679 (2003),
Abstract;
Functional specificity in 14-3-3 isoform interactions through dimer formation and phosphorylation. Chromosome location of mammalian isoforms and variants.: A. Aitken; Plant Mol. Biol.
50, 993 (2002),
Abstract;
Immunolocalisation of 14-3-3 isoforms in normal and scrapie-infected murine brain.: H.C. Baxter et al.; Neuroscience
109, 5 (2002),
Abstract;
Isoform pattern of 14-3-3 proteins in the cerebrospinal fluid of patients with Creutzfeldt-Jakob disease.: J. Wiltfang et al.; J. Neurochem.
73, 2485 (1999),
Abstract;
14-3-3 inhibits the Dictyostelium myosin II heavy-chain-specific protein kinase C activity by a direct interaction: identification of the 14-3-3 binding domain.: M. Matto-Yelin et al.; Mol. Biol. Cell
8, 1889 (1997),
Abstract;
The structural basis for 14-3-3:phosphopeptide binding specificity.: M.B. Yaffe et al.; Cell
91, 961 (1997),
Abstract;
Identification of 14-3-3 proteins in human platelets: effects of synthetic peptides on protein kinase C activation.: C.P. Wheeler-Jones et al.; Biochem. J.
315, 41 (1996),
Abstract;
Neurofibrillary tangles of Alzheimer’s disease brains contain 14-3-3 proteins.: R. Layfield et al.; Neurosci. Lett.
209, 57 (1996),
Abstract;
14-3-3 alpha and delta are the phosphorylated forms of raf-activating 14-3-3 beta and zeta. In vivo stoichiometric phosphorylation in brain at a Ser-Pro-Glu-Lys MOTIF.: A. Aitken et al.; J. Biol. Chem.
270, 5706 (1995),
Abstract;
Expression and structural analysis of 14-3-3 proteins.: D.H. Jones et al.; J. Mol. Biol.
245, 375 (1995),
Abstract;
Isoforms of 14-3-3 protein can form homo- and heterodimers in vivo and in vitro: implications for function as adapter proteins.: D.H. Jones et al.; FEBS Lett.
368, 55 (1995),
Abstract;
Purification of 14-3-3 protein and analysis of isoforms in chicken brain.: Y. Patel et al.; Biochim. Biophys. Acta.
1222, 405 (1994),
Abstract;
Subcellular localisation of 14-3-3 isoforms in rat brain using specific antibodies.: H. Martin et al.; J. Neurochem.
63, 2259 (1994),
Abstract;
Antibodies against the major brain isoforms of 14-3-3 protein. An antibody specific for the N-acetylated amino-terminus of a protein.: H. Martin et al.; FEBS Lett.
331, 296 (1993),
Abstract;